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AUTOMATIC FAULT CLASSIFICATION FOR MODEL-BASED PROCESS MONITORING

机译:基于模型的过程监控的自动故障分类

摘要

A computer implemented method, system and program product for automatic fault classification. A set of abnormal data can be automatically grouped based on sensor contribution to a prediction error. A principal component analysis (PCA) model of normal behavior can then be applied to a set of newly generated data, in response to automatically grouping the set of abnormal data based on the sensor contribution to the prediction error. Data points can then be identified, which are indicative of abnormal behavior. Such an identification step can occur in response to applying the principal component analysis mode of normal behavior to the set of newly generated data in order to cluster and classify the data points in order to automatically classify one or more faults thereof. The data points are automatically clustered, in order to identify a set of similar events, in response to identifying the data points indicative of abnormal behavior.
机译:一种用于自动故障分类的计算机实现的方法,系统和程序产品。可以根据传感器对预测误差的贡献来自动对一组异常数据进行分组。然后,响应于基于传感器对预测误差的贡献而自动对异常数据集进行分组,可以将正常行为的主成分分析(PCA)模型应用于一组新生成的数据。然后可以识别指示异常行为的数据点。响应于将正常行为的主成分分析模式应用于新生成的数据集,以便对数据点进行聚类和分类,以便自动对其一个或多个故障进行分类,可以进行这样的识别步骤。响应于识别指示异常行为的数据点,数据点被自动聚类,以便识别一组相似事件。

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